School of Materials and Metallurgy, University of Science and Technology Liaoning, Anshan 114051, China.
School of Chemical Engineering, University of Science and Technology Liaoning, Anshan 114051, China.
ACS Sens. 2023 Nov 24;8(11):4121-4131. doi: 10.1021/acssensors.3c01321. Epub 2023 Oct 24.
The construction of p-n heterojunctions has become a widely adopted strategy for achieving the selective detection of reducing gases, including H and CO. Nevertheless, the elucidation of the gas selectivity mechanism at the nanoscale remains elusive. First-principle calculations provide an attractive avenue for comprehending the influence of coordination structures on gas-sensitive selectivity, thereby unveiling the structure-activity relationship of p-n heterojunction sites. In this study, we investigate the selective adsorption behavior of H and CO on a NiO-TiO heterojunction using density functional theory. The results of d-band center analysis confirm that the NiO-TiO heterojunction with adsorbed oxygen significantly enhances the adsorption stability of reducing gases. Intriguingly, our calculations reveal that H has a higher affinity for adsorbed oxygen on the heterojunction surface compared to that of CO, corresponding to a lower H adsorption energy. Density of states (DOS) results indicate that the NiO-TiO heterojunction, with preadsorbed oxygen, exhibits ultrahigh selectivity with an n-type gas-sensitive response to H, effectively eliminating the cross-sensitivity observed with CO, as confirmed by gas-sensitive characterization research. The sensing mechanism of the NiO-TiO heterojunction's selective detection of H without interference from CO can be visually explained by electron transfer and potential barrier changes, paving the way for future developments in novel, selective gas-sensitive materials.
构建 p-n 异质结已成为实现对还原气体(包括 H 和 CO)选择性检测的广泛应用策略。然而,纳米尺度上气体选择性机制的阐明仍然难以捉摸。第一性原理计算为理解配位结构对气敏选择性的影响提供了一个有吸引力的途径,从而揭示了 p-n 异质结位点的结构-活性关系。在这项研究中,我们使用密度泛函理论研究了 H 和 CO 在 NiO-TiO 异质结上的选择性吸附行为。d 带中心分析的结果证实,吸附氧的 NiO-TiO 异质结显著增强了还原气体的吸附稳定性。有趣的是,我们的计算表明,H 对异质结表面吸附氧的亲和力高于 CO,对应于较低的 H 吸附能。态密度(DOS)结果表明,预吸附氧的 NiO-TiO 异质结表现出超高选择性,对 H 具有 n 型气敏响应,有效消除了与 CO 相关的交叉敏感性,这一结果得到了气敏特性研究的证实。NiO-TiO 异质结选择性检测 H 而不受 CO 干扰的传感机制可以通过电子转移和势垒变化的变化直观地解释,为新型选择性气敏材料的未来发展铺平了道路。